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Optimal Sampling in State Space Models with Applications to Network Monitoring

机译:状态空间模型中的最佳采样及其在网络监控中的应用

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摘要

Advances in networking technology have enabled network engineers to use sampled data from routers to estimate network flow volumes and track them over time. However, low sampling rates result in large noise in traffic volume estimates. We propose to combine data on individual flows obtained from sampling with highly aggregate data obtained from SNMP measurements (similar to those used in network tomography) for the tracking problem at hand. Specifically, we introduce a linearized state space model for the estimation of network traffic flow volumes from combined SNMP and sampled data. Further, we formulate the problem of obtaining optimal sampling rates under router resource constraints as an experiment design problem. Theoretically it corresponds to the problem of optimal design for estimation of conditional means for state space models and we present the associated convex programs for a simple approach to it. The usefulness of the approach in the context of network monitoring is illustrated through an extensive numerical study.
机译:网络技术的进步使网络工程师能够使用来自路由器的采样数据来估计网络流量并随时间跟踪它们。但是,低采样率会导致流量估算中的大量噪声。我们建议将采样中获得的各个流的数据与SNMP测量中获得的高度聚合数据(类似于网络层析成像中使用的数据)相结合,以解决当前的跟踪问题。具体来说,我们引入了线性化的状态空间模型,用于根据SNMP和采样数据的组合估算网络流量。此外,我们将在路由器资源限制下获得最佳采样率的问题公式化为实验设计问题。从理论上讲,它对应于用于状态空间模型的条件均值估计的最优设计问题,我们提出了一种相关的凸程序,以简化方法。通过广泛的数值研究说明了该方法在网络监控中的有用性。

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